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首页> 外文期刊>European Journal of Mechanics, B. Fluids >Simultaneous microfluidic pumping and mixing using an array of asymmetric 3D ring electrode pairs in a cylindrical microchannel by the AC electroosmosis effect
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Simultaneous microfluidic pumping and mixing using an array of asymmetric 3D ring electrode pairs in a cylindrical microchannel by the AC electroosmosis effect

机译:通过AC电渗效应,在圆柱形微通道中使用一系列非对称3D环电极对混合进行微流体泵送和混合

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摘要

The present studies of AC electroosmosis (ACEO) micropumps for simultaneous pumping and mixing are mainly involved in the designs of the planar electrode pairs in a rectangular microchannel, such as the diagonal/herringbone shape of electrodes on top and bottom of the substrates. The two mixing samples usually flow into the left and right half of the inlet, respectively. However, the flow rate is limited because of the less electrodes on the walls, and the mixing is only appropriate for the channel of small diameters owing to the vortices appearing near the surface of electrodes. To solve the problem, we proposed an ACE() micropump with an array of asymmetric ring electrode pairs in a cylindrical microfluidic channel, and established a three-dimensional (3D) theoretical model by the standard Poisson-Boltzmann (PB) theory and convection-diffusion equation. In this paper, the two mixing samples flow into the inner and outer circular pipe of the inlet, respectively. Thus, the samples can be exchanged from the outer pipe area to the inner pipe area, so that it can strengthen the mixing by the vortices around the ring electrode surfaces in the microchannel. The microfluidic velocity field, vorticity field and concentration field are investigated in detail to explain the mechanism of pumping and mixing. To further improve the mixing performance, we designed and researched the combination sequences PnMm of ring electrode pairs based on the pumping mode of "forward driving of electrode pair" and the mixing mode of "reversal driving of electrode pair". The simulation results show that the ring ACEO micropump with the inner and outer pipe inlet can rapidly pump the microflows and efficiently mix the samples simultaneously compared with the planar multifunctional ACEO micropumps. The numerical simulation of the ring ACE() micropump in this paper is of significant importance for the development of multifunctional microfluidic devices in biochemical field, and feasible fabrication techniques should be experimentally investigated in future studies. (C) 2018 Elsevier Masson SAS. All rights reserved.
机译:用于同时泵送和混合的AC电渗(ACEO)微泵的本研究主要涉及矩形微通道中的平面电极对的设计,例如基板的顶部和底部的电极的对角线/字纹形状。两个混合样品通常分别流入入口的左半部和右半部分。然而,由于壁上的电极越小,流速是有限的,并且混合仅适用于由于电极表面附近的涡流而适合小直径的通道。为了解决问题,我们提出了一种ACE()微泵,在圆柱形微流体通道中具有一定的不对称环电极对阵列,并通过标准泊松 - Boltzmann(PB)理论和对流建立了三维(3D)理论模型 - 扩散方程。在本文中,两个混合样品分别流入入口的内圆形管和外圆形管道。因此,可以将样品从外管区域交换到内管区域,使得它可以通过微通道中的环电极表面周围的涡流加强混合。详细研究了微流体速度场,涡旋场和浓度场,以解释泵送和混合的机理。为了进一步提高混合性能,我们基于“电极对向前驱动”的泵送方式和“电极对的逆转驱动”的混合方式设计和研究了环电极对的组合序列PNMM。仿真结果表明,与内管道和外管道入口的环ACEO微泵可以快速泵送微流量,并与平面多功能Aceo Micropumps相比,有效地将样品混合。本文中环ACE()Micropump的数值模拟对于生物化学领域的多功能微流体装置的开发具有重要意义,并且应该在未来的研究中进行实验研究可行的制造技术。 (c)2018年Elsevier Masson SAS。版权所有。

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